Interband cascaded infrared optoelectronic devices for high operating temperature applications
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Affiliation:

1.School of Physics and Optoelectronic Engineering, Hangzhou Institute for Advanced Study, University of Chinese Academy of Sciences, Hangzhou 310024, China;2.Key Laboratory of Infrared Imaging Materials and Detectors, Shanghai Institute of Technical Physics, Chinese Academy of Sciences, Shanghai 200083, China

Clc Number:

TN304.2;TN305

Fund Project:

National Natural Science Foundation of China (NSFC) (61904183, 61974152,62104237,62004205), the Youth Innovation Promotion Association of the Chinese Academy of Sciences (Y202057), Shanghai Rising-Star Program (20QA1410500), Shanghai Sail Plans (21YF1455000)

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    Abstract:

    High operating temperature infrared detector is one of the important development tendencies for the third-generation infrared focal plane. The interband cascade photodetectors take advantage of potential barrier structure and multistage absorption structure. Unidirectional transport of photogenerated carriers is achieved through relaxation and tunneling region which can reduce the generation-recombination current from the depletion region of the PN junction. The interband cascade detectors can effectively collect photo-generated carriers, and even the diffusion length is short utilizing the multiple and short absorption regions. So the detection performance can be improved at high operating temperature. In this paper, we present our recent research progress in the interband cascaded infrared optoelectronic devices, including high operation temperature infrared interband cascade detectors, high speed interband cascade detectors, and interband cascade light-emitting devices.

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CHAI Xu-Liang, ZHOU Yi, WANG Fang-Fang, XU Zhi-Cheng, LIANG Zhao-Ming, ZHU Yi-Hong, ZHOU Jian, ZHENG Lu-Lu, HUANG Min, BAI Zhi-Zhong, HUANG Ai-Bo, CHEN Hong-Lei, DING Rui-Jun, CHEN Jian-Xin. Interband cascaded infrared optoelectronic devices for high operating temperature applications[J]. Journal of Infrared and Millimeter Waves,2022,41(1):122~128

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History
  • Received:November 07,2021
  • Revised:January 09,2022
  • Adopted:December 01,2021
  • Online: January 08,2022
  • Published: